Investigation of Energy Absorption in Aluminum Foam Sandwich Panels By Drop Hammer Test: Experimental Results

Size: px
Start display at page:

Download "Investigation of Energy Absorption in Aluminum Foam Sandwich Panels By Drop Hammer Test: Experimental Results"

Transcription

1 Investigation of Energy Absorption in Aluminum Foam Sandwich Panels By Drop Hammer Test: Experimental Results Mohammad Damghani, Mohammadzadeh Gonabadi To cite this version: Mohammad Damghani, Mohammadzadeh Gonabadi. Investigation of Energy Absorption in Aluminum Foam Sandwich Panels By Drop Hammer Test: Experimental Results. Mechanics, Materials Science & Engineering Journal, Magnolithe, 2017, 7, < /mmse >. <hal > HAL Id: hal Submitted on 14 Apr 2017 HAL is a multi-disciplinary open access archive for the deposit and dissemination of scientific research documents, whether they are published or not. The documents may come from teaching and research institutions in France or abroad, or from public or private research centers. L archive ouverte pluridisciplinaire HAL, est destinée au dépôt et à la diffusion de documents scientifiques de niveau recherche, publiés ou non, émanant des établissements d enseignement et de recherche français ou étrangers, des laboratoires publics ou privés. Distributed under a Creative Commons Attribution 4.0 International License

2 Investigation of Energy Absorption in Aluminum Foam Sandwich Panels By Drop Hammer Test: Experimental Results Mohammad Nouri Damghani 1,a, Arash Mohammadzadeh Gonabadi 1,b 1 Department of mechanical engineering, Semnan University, Semnan, Iran a mnoori@semnan.ac.ir b arash_mg@semnan.ac.ir DOI /mmse Keywords: sandwich panel, metal foam, impact, energy absorption, drop hammer, dynamic load, experimental method. ABSTRACT. The sandwich panel structures with aluminum foam core and metal surfaces have light weight with high performance in dispersing energy. This has led to their widespread use in the absorption of energy. The cell structure of foam core is subjected to plastic deformation in the constant tension level that absorbs a lot of kinetic energy before destruction of the structure. In this research, by making samples of aluminum foam core sandwich panels with aluminum surfaces, experimental tests of low velocity impact by a drop machine are performed for different velocities and weights of projectile on samples of sandwich panels with aluminum foam core with relative density of 18%, 23%, and 27%. The output of device is acceleration time diagram which is shown by an accelerometer located on the projectile. From the experimental tests, the effect of weight, velocity and energy of the projectile and density of the foam on the global deformation, and energy decrease rate of projectile have been studied. The results of the experimental testes show that by increasing the density of aluminum foam, the overall impression is reduced and the slop of energy loss of projectile increases. Also by increasing the velocity of the projectile, the energy loss increases. Introduction. Sandwich panels with composite face sheets and foam core are widely used in lightweight constructions, especially in aerospace industries due to their advantages over the conventional structural constructions, such as high specific strengths and stiffness and good weight saving [1]. An early study [2] has indicated that using composite materials instead of aluminium for the face sheets results in higher performance and lower weight. In the meanwhile, as a new multifunctional engineering material, aluminium foam has many useful properties such as low density, high specific stiffness, good impact resistance, high energy absorption capacity, easy to manufacture into complex shape, and good erosion resistance [3, 4], so it is usually used as core material of sandwich panels. However, it has also been found that composite sandwich panels are susceptible to impact damage caused by runway debris, hailstones, dropped tools and so on [2]. The resulting impact damage to the sandwich panel ranges from face sheet indentation to complete perforation, with the strength and reliability of the structures dramatically affected. Unlike for their solid metallic counterparts, making predictions of the effects of low-velocity impact damage are difficult and are still relatively immature. Hence, the behaviour of sandwich structures with aluminium foam core under low-velocity impact has received increasing attention. Recently, a number of studies have shown that localized impact loading on a sandwich structure can result in the generation of local damage, which can lead to significant reductions in its load-carrying capacity [5]. Investigations have been carried out on sandwich panels with foam core under quasistatic and impact loadings to explore the perforation energy absorbing mechanisms, mostly on sandwich structures with polymeric foam cores [6 8]. Wen et al. [6] have analysed marine sandwich construction and they have identified the major energy absorbing modes as fragmentation under the penetrator and global panel deformation. Mines et al. [7] conducted a series of quasi-static perforation tests and low-velocity impact tests on square panels based on polymer composite sandwich structures. They suggested that higher impact velocities tend to increase the energy absorption, which is

3 attributed to an increase in the core crush stress and skin failure stress at high strain rates. More comprehensive and detailed summaries of previous experimental studies can be found in a thorough review article of the impact response of sandwich structures given by Abrate [8]. While polymeric foams have been applied for many years, metallic foams have gained a significant and growing interest for applications in sandwich structures currently, for the reason that in comparison with polymer foams they exhibit excellent recycling efficiency, high specific stiffness, good thermal conductivity and high melting point. Kiratisaevee and Cantwell [9] investigated the impact response of sandwich panels with ALPORAS foam cores and fiber-rein- forced thermoplastic or fiber-metal laminate (FML) face-sheets. Impact tests were conducted by using a drop hammer at velocities up to 3 m/s. The resistance of these sandwich panels was found to be rate sensitive over the full range of conditions examined. Ruan et al. [10] have experimentally investigated the mechanical response and energy absorption of sandwich panels subjected to quasi-static indentation, which consist of aluminum face sheets and ALPORAS foam core. The effects of several parameters, such as face sheet thickness, core thickness, boundary conditions, adhesive and surface condition of face sheets on the mechanical response and energy absorption during indentation are identified. While most of the existing investigations into the impact responses of composite sandwich structures with metallic foam cores have focused on high-velocity impact [11 16], only minimal attention has been paid on low-velocity tests, and few detailed parametric studies have been reported yet. In the present study, a series of perforation tests were conducted on the sandwich panels with an aluminum foam core and two face sheets, which were subjected to low-velocity impact. The perforation responses of the sandwich panels are investigated and the deformation and failure modes observed during perforation are described in detail. The mechanical properties and collapse mechanisms of aluminum foam sandwich panels are correlated to the physical and geometric properties of the face sheets and foam core, so the effects of face sheet thickness, core thickness and relative density, as well as the effect of impact energy on the energy absorption capacity of sandwich panels are analyzed. 1. Experimental investigation Specimens and material properties. The face sheets of sandwich panels are made of Aluminum series 1000 (AL-1000). The thickness of both face sheets (top and bottom of foam core) is 1 mm. Uniaxial tensile tests were carried out to obtain the stress strain curves using the Zwick Tensile Testing Machine according to the Standard E8 in the Laboratory of Amirkabir University of Technology in Iran. Face sheets have been tested in 6 samples and 3 directions (0 o, 90 o and45 o ). Figures 1 and 2 demonstrate AL-1000 samples, top face sheet and Testing Machine. Also, Table 1 gives material properties for the face sheets and they are averaged from a number of repeated tests at strain rate of 10 3 /s. It should be noted that the surface of the laminates is marked by coding number such as Front AL mm, so the visual patterns are not the actual named. The aluminum foam used as the core material in the experiments is a closed-cell foam with the average cell size of approximately 2 5 mm, which is produced by ALPORAS method using Al (A356/ SiCp) as base materials.

4 (a) (b) (c) Fig. 1. (a) Al samples before tensile test. (b) Al samples after tensile test. According to E8 Standard (c) top face sheet. Fig. 2. ZWICK TENSILE TESTER, Laboratory of the Amirkabir University of Iran. Table 1. Properties of the face sheets Material property σ Y (MPa) ν E(GPa) ρ(kg/m 3 ) σ u (MPa) ε D (MPa) value

5 Foam core samples shown in Figure 3 were used in the uniaxial compression tests and the average values of their mechanical properties with three relative densities, are shown in Table 2. Two different thicknesses of aluminum foam cores, namely 20 and 30 mm, were used to investigate the effect of foam core thickness. A commercial two-component impact-resistant adhesive SA102 was used to glue the face sheets and the foam core. Great attention has been given to achieve the perfect bonding between face sheets and foam core for a satisfactory structural performance, so the debonding effect will not be considered in this study. The final sandwich panel specimens are square plates with mm 3 and mm 3 in dimensions. To ensure the repeatability of the tests, three specimens were tested for each selected case. Table 2. Aluminium foams material properties Parameters Type Type 2 Type 1 Relative Density 27% 3 23% 18% Young s modulus (GPa) yield stress (MPa) plateau stress (MPa) densification ratio Poisson s ratio Fig. 3. Samples of Aluminum Foams with different relative densities. Quasi-static tests. To determine the level to which dynamic behavior should be considered under low-velocity impact, the sandwich panels were first tested under quasi-static loading for subsequent comparison with the impact loading cases. A ZWICK test system in the Engineering and Material Testing Center, Amirkabir University, was used to perform the quasi-static perforation. Specimens were fully clamped along all edges using two steel frames with a span of mm 2, leaving an exposed square in the center. The main projectile is conical-nosed and two different projectiles with identical diameter of 40 mm were used for comparison in this study. One is a flat-ended projectile and the other is a hemispherical-nosed projectile. The geometry and dimensions of projectiles are shown in Figure 4. A constant crosshead speed of 1.2 mm/min was applied to load the samples until full failure and the force-displacement histories were recorded. Figure 5 shows the behavior of the Foam after the Compression test.

6 Fig. 4. Zwick Compression Tester, quasi static test. Fig. 5. Behavior of the Foam after the Compression test. Low-velocity impact tests. Low-velocity impact tests were conducted on a drop weight machine (Drop Hammer). The specimens were impacted at various energy levels in order to achieve different damage levels. The impact mass was varied from approximately 14 to 35 kg and the drop height ranged between 50 mm and 200 mm. An accelerometer was embedded inside the hammer just above the impactor tip to get the velocity and displacement history. For more details, the reader is referred to Reference [17]. An important issue in measuring the mechanical properties of foams is the effect of the specimen size, relative to the cell size. The size effect is also particularly important for foam core sandwich panels, as in some components the foam core may have dimensions of only a few cell diameters. As for sandwich beams with laminate skins and foam core, the size effect has already been experimentally demonstrated for shear failure in four-point bending [18]. The size effect can be avoided if the foam plate has at least eight cell diameters in thickness [19]. However, the thin and stiff face sheets will give a better distribution of load throughout the area when subjected to loads, which would lead to a lower localized mean load and diminish the size effects. 2. Experimental Results. In this section the damage of sandwich specimens composed of two 1 mm thick Aluminum faces and an Aluminum foam-core by the projectile is studied and the effect of various parameters such as impact velocity and core density on the amount of energy absorbed by the specimen are characterized. A rigid striker is used to simplify the model of impact test. The procedure of impact is the penetration of the rigid striker to the Aluminum plate or its foam. in all steps of the experiments, after the falling of projectile from the impact machine, the accelerometer measures the projectile acceleration during the energy imposition to the specimen and returning back. The Graph software is used to calculate the area under the acceleration vs. time curve to obtain the velocity vs. time curve and recalculate the area under the velocity vs. time curve to obtain the time-variation of displacement. By multiplying the mass of projectile to its acceleration one can obtain the impact force and by computing the area under the force vs. time curve the impact energy would be obtained. The energy absorbed by the

7 specimen and the depth of indentation play an important role in study of the impact phenomenon. The amount of absorbed energy by the structure can be used as a criterion for its performance. Absorbed energy by the target during the impact equals the change of kinetic energy before and after the impact: E p 1 m V 1 m V E p i p r p (1) In which V i and V r are the contact velocity and the return velocity of projectile, respectively. Effect of impact velocity A rigid projectile (with radius of 60 mm, height of 200 mm and mass of 25 kg) is dropped with different velocities and hits the sandwich specimen with dimension of 30x30x32. The relative density of foam is So by changing the height from which the projectile is dropped one can controls its velocity according to Eq. (2). Experiments are done according to Table 3. v 2gh (2) Table 3. Specifications of prepared samples for the study of the effect of impact velocity #Test Projectile Radius (mm) Falling Height (mm) Mass (kg) Rate of density (%) Thickness (mm) Figs. 6(a-d) show pictures of the specimen before and after the experiments. Plots of timeacceleration, time-velocity, time-displacement, force-displacement, energy-displacement, and timeenergy for each test are presented in Figs. 7-12, respectively. As shown in Fig. 8 with the increasing the impact velocity, the projectile acceleration tends to increase with time. As depicted in Fig. 9 the projectile velocity gets down with time in a rather linear manner. Also Fig. 10 shows that the depth of specimen crushing has a linear relation with the height of projectile falling. As shown in Fig. 11 the kinetic energy of projectile is in a linear relation with its displacement. Fig. 12 shows that the rate of energy loss is increased with increasing the impact velocity.

8 (a) (b) (c) Fig. 6. Pictures of: (a) untested specimen, (b) specimen after the 1st experiment, (c) specimen after the 2nd experiment, (d) specimen after the 3rd experiment.

9 Fig. 7. Variation of projectile force in terms of its displacement. Fig. 8. Time-variation of projectile acceleration.

10 Fig. 9. Time-variation of projectile velocity. Fig. 10. Time-variation of projectile displacement.

11 Fig. 11. Variation of projectile kinetic energy in terms of its displacement. Fig. 12. Time-variation of projectile kinetic energy. Effect of foam-core density. In this section the effect of Aluminum foam density on the amount of energy absorbed during the impact is measured. Experiments are done according to Table 4. Figs. 13(a-d) show pictures of the specimen before and after the experiments. Figs show the timevariation of projectile acceleration, velocity, displacement and energy as well as the variation of force and energy versus projectile displacement for each test. As expected, increasing the relative density leads to an improvement of impact strength (Fig. 14). The similar trend is observed in Fig. 15. According to Fig. 16, by increasing the core relative density, duration of crush gets shortened. Fig. 17 depicts that sandwich panels with denser core suffer less crush. As shown in Fig. 19 the rate of energy loss is increased with increasing the relative density of panel core.

12 Table 4. Specifications of prepared samples for study of the foam-core density. #Test Projectile Radius (mm) Falling Height (mm) Mass (kg) Relative density (%) Thickness (mm) (a) (b) Fig. 13. Pictures of: (a) untested specimen, (b) specimen after the 4th experiment, (c) specimen after the 5th experiment. (c)

13 Fig. 14. Variation of projectile force in terms of its displacement. Fig. 15. Time-variation of projectile acceleration.

14 Fig. 16. Time-variation of projectile velocity. Fig. 17. Time-variation of projectile displacement.

15 Fig. 18. Variation of projectile kinetic energy in terms of its displacement. Fig. 19. Time-variation of projectile kinetic energy. Effect of sandwich skin. The sandwich specimen is impacted by a rigid projectile with the properties of Table 5. Fig. 20 shows the specimen before and after the experiment. The time-variation of projectile acceleration, velocity, displacement and energy as well as the variation of force and energy versus projectile displacement is plotted in Figs As shown in these Figures, adjoining the skins to the foam enhances the impact strength, while the total behaviours of neat foam and sandwich panel are rather the same.

16 Table 5. Specifications of prepared samples for study of the effect of sandwich skin. #Test 7 Rigid Radius (mm) 60 Falling Height (mm) 200 Mass (kg) 25 Rate of density (%) 18 Thickness (mm) 30 (a) Fig. 20. Pictures of: (a) untested specimen, (b) specimen after the 7th experiment. (b) Fig. 21. Variation of projectile force in terms of its displacement for the 7th experiment.

17 Fig. 22. Time-variation of projectile acceleration for the 7th experiment. Fig. 23. Time-variation of projectile velocity for the 7th experiment.

18 Fig. 24. Time-variation of projectile displacement for the 7th experiment. Fig. 25. Variation of projectile kinetic energy in terms of its displacement for the 7th experiment.

19 Fig. 26. Time-variation of projectile kinetic energy for the 7th experiment. Summary. In this paper the behavior of Aluminum foam-core sandwich panels under the low velocity impact has studied and the effect of foam density as well as the impact velocity and the weight of projectile are investigated. Main results of the present research are as follows: Composing of Aluminum plate and its foam to form a sandwich structure increases total rigidity of samples in comparison to its constituents and causes the structure to dissipate a major portion of the impact energy through large plastic deformations. Increasing the relative density from 18% to 27% reduces the impact damage up to 46% as well as contact duration between the projectile and the sample. Change in the initial energy of the projectile does not have not a noticeable effect on the time duration of contact between the projectile and the sample. It is because that with increasing the energy of the projectile the rate of its energy loss gets increased. The destructive effect of projectile velocity is more dominant than that of its mass. General degradation of structure is a function of the projectile energy. In another words, projectiles with different values of mass and velocity but the same initial energy will cause rather the same effect on the specimen. The rate of energy loss of the projectile is directly dependent on its initial energy instead of its mass and velocity. Increasing the rigidity of the structure shorten its contact duration with the projectile. By reducing the projectile diameter and keeping constant its energy, the damage level of structure is increased. References [1] Zenkert D., An introduction to sandwich construction. Sheffield: Engineering Materials Advisory Services Ltd. [2] Abrate S Impact on composite structures. Cambridge: Cambridge University Press. [3] Gibson L.J., Ashby M.F., Cellular solids: structure and properties, 2nd edn. Cambridge: Cambridge University Press.

20 [4] Ashby M.F., Evans A.G., Fleck N.A., et al., Metal foams: a design guide. Boston, MA: Butterworth Heinemann. [5] Hazizan M.A., Cantwell WJ., 2003, The low velocity impact response of an aluminum honeycomb sandwich structure. Compos Part B, 34 (8), [6] Wen H.M., Reddy T.Y., Reid S.R., et al., 1997, Indentation, penetration and perforation of composite laminate and sandwich panels under quasi-static and projectile loading. Key Eng Mater, (1), [7] Mines R.A.W., Worrall C.M., Gibson AG., Low velocity perforation behavior of polymer composite sandwich panels. Int J Impact Eng, 21(10), [8] Abrate S., Localized impact on sandwich structures with laminated facings. Appl Mech Rev, 50(2), [9] Kiratisaevee H., Cantwell W.J., Low-velocity impact response of high-performance aluminum foam sandwich structures. J Reinf Plast Compos, 24(10), [10] Ruan D., Lu G., Wong Y.C., Quasi-static indentation tests on aluminum foam sandwich panels. Compos Struct, 92(9), [11] Villanueva G.R., Cantwell W.J., The high velocity impact response of composite and FML-reinforced sandwich structures. Compos Sci Technol, 64(1), [12] Hanssen A.G., Girard Y., Olovsson L., et al., A numerical model for bird strike of aluminum foam-based sandwich panels. Int J Impact Eng, 32(7), [13] Zhao H., Elnasri I., Girard Y., Perforation of aluminum foam core sandwich panels under impact loading-an experimental study. Int J Impact Eng, 34(7), [14] Hou W., Zhu F., Lu G., et al., Ballistic impact experiments of metallic sandwich panels with aluminum foam core. Int J Impact Eng, 37(10), [15] Buitrago B.L., Santiuste C., Sanchez-Saez S., et al Modelling of composite sandwich structures with honeycomb core subjected to high-velocity impact. Compos Struct, 92(9), [16] Ivanez I., Santiuste C., Barbero E., et al., Numerical modelling of foam-cored sandwich plates under high-velocity impact. Compos Struct, 93(9), [17] Yu J.L., Wang X., Wei Z.G., et al., Deformation and failure mechanism of dynamically loaded sandwich beams with aluminum-foam core. Int J Impact Eng, 28(3), [18] Bazant Z.P., Zhou Y., Daniel I.M., et al., Size effect on strength of laminate-foam sandwich plates. J Eng Mater Tech, 128(3), [19] Tekoglu C., Gibson L.J., Pardoen T., et al., Size effects in foams: experiments and model. ing Prog Mater Sci, 56(2), , doi /j.pmatsci

Effects of temperature on monotonic and fatigue properties of carbon fibre epoxy cross ply laminates

Effects of temperature on monotonic and fatigue properties of carbon fibre epoxy cross ply laminates Effects of temperature on monotonic and fatigue properties of carbon fibre epoxy cross ply laminates Y. Matsuhisa, J. King To cite this version: Y. Matsuhisa, J. King. Effects of temperature on monotonic

More information

Mechanical Behaviour of Polymer Sandwich Composites under Compression

Mechanical Behaviour of Polymer Sandwich Composites under Compression American Journal of Materials Science 2015, 5(3C): 107-111 DOI: 10.5923/c.materials.201502.22 Mechanical Behaviour of Polymer Sandwich Composites under Compression Mohd. Zahid Ansari *, Sameer Rathi, Kewal

More information

Finite Element Analysis on the Unloading Elastic Modulus of Aluminum Foams by Unit-cell Model

Finite Element Analysis on the Unloading Elastic Modulus of Aluminum Foams by Unit-cell Model IOP Conference Series: Materials Science and Engineering PAPER OPEN ACCESS Finite Element Analysis on the Unloading Elastic Modulus of Aluminum Foams by Unit-cell Model To cite this article: F Triawan

More information

Perforation of aluminium foam core sandwich panels under impact loading: A numerical and analytical study

Perforation of aluminium foam core sandwich panels under impact loading: A numerical and analytical study EPJ Web of Conferences 94, 04002 (2015) DOI: 10.1051/epjconf/20159404002 c Owned by the authors, published by EDP Sciences, 2015 Perforation of aluminium foam core sandwich panels under impact loading:

More information

Strain Rate Effects in the Mechanical Properties of Polymer Foams

Strain Rate Effects in the Mechanical Properties of Polymer Foams Strain Rate Effects in the Mechanical Properties of Polymer Foams I J P T Serials Publications Strain Rate Effects in the Mechanical Properties of Polymer Foams M. Z. Hassan 1 and W. J. Cantwell 2 1 Universiti

More information

In many industrial fields, such as aviation, aerospace,

In many industrial fields, such as aviation, aerospace, August 2012 Research & Development Compressive properties of aluminum foams by gas injection method *Zhang Huiming 1, Chen Xiang 1, 2, Fan Xueliu 1, and Li Yanxiang 1,2 (1. Department of Mechanical Engineering,

More information

EXPERIMENTAL STUDY OF SANDWICH PANEL UNDER IMPACT LOADING

EXPERIMENTAL STUDY OF SANDWICH PANEL UNDER IMPACT LOADING EXPERIMENTAL STUDY OF SANDWICH PANEL UNDER IMPACT LOADING I.Nasri 1, H.J.Li 2, H.Zhao 1 1 Laboratoire de Mécanique et Technologie, ENS-Cachan/CNRS/University Paris 6 61, Avenue du président Wilson, 94235

More information

The out-of-plane compressive behavior of metallic honeycombs

The out-of-plane compressive behavior of metallic honeycombs Materials Science and Engineering A 380 (2004) 272 280 The out-of-plane compressive behavior of metallic honeycombs F. Côté a, V.S. Deshpande a, N.A. Fleck a,, A.G. Evans b a Cambridge University Engineering

More information

Impact of cutting fluids on surface topography and integrity in flat grinding

Impact of cutting fluids on surface topography and integrity in flat grinding Impact of cutting fluids on surface topography and integrity in flat grinding Ferdinando Salvatore, Hedi Hamdi To cite this version: Ferdinando Salvatore, Hedi Hamdi. Impact of cutting fluids on surface

More information

Erosion wear behaviour and model of abradable seal coating

Erosion wear behaviour and model of abradable seal coating Erosion wear behaviour and model of abradable seal coating Yi Maozhong, Huang Baiyun, He Jiawen To cite this version: Yi Maozhong, Huang Baiyun, He Jiawen. Erosion wear behaviour and model of abradable

More information

Continuous melting and pouring of an aluminum oxide based melt with cold crucible

Continuous melting and pouring of an aluminum oxide based melt with cold crucible Continuous melting and pouring of an aluminum oxide based melt with cold crucible B Nacke, V Kichigin, V Geza, I Poznyak To cite this version: B Nacke, V Kichigin, V Geza, I Poznyak. Continuous melting

More information

Drop weight testing on sandwich panels with a novel thermoplastic core material

Drop weight testing on sandwich panels with a novel thermoplastic core material University of Nebraska - Lincoln DigitalCommons@University of Nebraska - Lincoln Civil Engineering Faculty Publications Civil Engineering 2012 Drop weight testing on sandwich panels with a novel thermoplastic

More information

New experimental method for measuring the energy efficiency of tyres in real condition on tractors

New experimental method for measuring the energy efficiency of tyres in real condition on tractors New experimental method for measuring the energy efficiency of tyres in real condition on tractors G Fancello, M. Szente, K. Szalay, L. Kocsis, E. Piron, A. Marionneau To cite this version: G Fancello,

More information

How Resilient Is Your Organisation? An Introduction to the Resilience Analysis Grid (RAG)

How Resilient Is Your Organisation? An Introduction to the Resilience Analysis Grid (RAG) How Resilient Is Your Organisation? An Introduction to the Resilience Analysis Grid (RAG) Erik Hollnagel To cite this version: Erik Hollnagel. How Resilient Is Your Organisation? An Introduction to the

More information

Comparison of Energy Absorption Characteristics of Thermoplastic Composites, Steel and Aluminum in High-Speed Crush Testing of U-Beams

Comparison of Energy Absorption Characteristics of Thermoplastic Composites, Steel and Aluminum in High-Speed Crush Testing of U-Beams Comparison of Energy Absorption Characteristics of Thermoplastic Composites, Steel and Aluminum in High-Speed Crush Testing of U-Beams CELANESE ENGINEERED MATERIALS Michael Ruby October, 2013 1 Overview

More information

DISLOCATION RELAXATION IN HIGH PURITY POLYCRYSTALLINE ALUMINUM AT MEGAHERTZ FREQUENCIES

DISLOCATION RELAXATION IN HIGH PURITY POLYCRYSTALLINE ALUMINUM AT MEGAHERTZ FREQUENCIES DISLOCATION RELAXATION IN HIGH PURITY POLYCRYSTALLINE ALUMINUM AT MEGAHERTZ FREQUENCIES M. Zein To cite this version: M. Zein. DISLOCATION RELAXATION IN HIGH PURITY POLYCRYSTALLINE ALU- MINUM AT MEGAHERTZ

More information

Finite Element Analysis of Impact Damaged Honeycomb Sandwich

Finite Element Analysis of Impact Damaged Honeycomb Sandwich Finite Element Analysis of Impact Damaged Honeycomb Sandwich D.P.W. Horrigan and R.R Aitken Centre for Polymer and Composites Research, Department of Mechanical Engineering, The University of Auckland,

More information

Sandwich beams with gradient-density aluminum foam cores subjected to impact loading

Sandwich beams with gradient-density aluminum foam cores subjected to impact loading Structures Under Shock and Impact XIII 391 Sandwich beams with gradient-density aluminum foam cores subjected to impact loading J. Zhang & G. P. Zhao State Key Laboratory of Mechanical Structure Strength

More information

Mechanical Characterization of PU Based Sandwich Composites with Variation in Core Density

Mechanical Characterization of PU Based Sandwich Composites with Variation in Core Density International Journal of Materials Science and Applications 2015; 4(4): 277-282 Published online July 17, 2015 (http://www.sciencepublishinggroup.com/j/ijmsa) doi: 10.11648/j.ijmsa.20150404.19 ISSN: 2327-2635

More information

Pyramidal lattice truss structures with hollow trusses

Pyramidal lattice truss structures with hollow trusses Materials Science and Engineering A 397 (2005) 132 137 Pyramidal lattice truss structures with hollow trusses Douglas T. Queheillalt, Haydn N.G. Wadley Department of Materials Science and Engineering,

More information

FIRE BEHAVIOUR OF POST-INSTALLED STEEL REBARS: FULL-SCALE EXPERIMENTATION ON A CANTILEVER CONCRETE SLAB

FIRE BEHAVIOUR OF POST-INSTALLED STEEL REBARS: FULL-SCALE EXPERIMENTATION ON A CANTILEVER CONCRETE SLAB FIRE BEHAVIOUR OF POST-INSTALLED STEEL REBARS: FULL-SCALE EXPERIMENTATION ON A CANTILEVER CONCRETE SLAB Mohamed Amine Lahouar, Nicolas Pinoteau, Jean-François Caron, Gilles Forêt To cite this version:

More information

Densification superficielle de matériaux poreux par choc laser

Densification superficielle de matériaux poreux par choc laser Densification superficielle de matériaux poreux par choc laser D. Zagouri, J.-P. Romain, Blanche Dubrujeaud, Michel Jeandin To cite this version: D. Zagouri, J.-P. Romain, Blanche Dubrujeaud, Michel Jeandin.

More information

Progress report Material characterization and impact performance of Semi Impregnated Micro-Sandwich structures, SIMS

Progress report Material characterization and impact performance of Semi Impregnated Micro-Sandwich structures, SIMS Progress report Material characterization and impact performance of Semi Impregnated Micro-Sandwich structures, SIMS Dipartimento di Ingegneria Meccanica e Aerospaziale By. Prof. G. Belingardi, Alem.T.

More information

The Effect of Magnetic Field on Metal Anodizing Behaviour

The Effect of Magnetic Field on Metal Anodizing Behaviour The Effect of Magnetic Field on Metal Anodizing Behaviour T Kozuka, H Honda, S Fukuda, M Kawahara To cite this version: T Kozuka, H Honda, S Fukuda, M Kawahara. The Effect of Magnetic Field on Metal Anodizing

More information

Experimental and Numerical Study of Lateral Collapse of Square and Rectangular Composite Tubes

Experimental and Numerical Study of Lateral Collapse of Square and Rectangular Composite Tubes Proceedings of the World Congress on Mechanical, Chemical, and Material Engineering (MCM 15) Barcelona, Spain July - 21, 15 Paper No. 352 Experimental and Numerical Study of Lateral Collapse of Square

More information

Part 4 MECHANICAL PROPERTIES

Part 4 MECHANICAL PROPERTIES Part 4 MECHANICAL PROPERTIES Fiber Composite Materials M. S. Ahmadi 192 TENSILE PROPERTIES Tensile properties, such as tensile strength, tensile modulus, and Poisson s ratio of flat composite laminates,

More information

Characterization of Fracture Toughness G (sub c) of PVC and PES Foams

Characterization of Fracture Toughness G (sub c) of PVC and PES Foams Cleveland State University EngagedScholarship@CSU Mechanical Engineering Faculty Publications Mechanical Engineering Department 5-2011 Characterization of Fracture Toughness G (sub c) of PVC and PES Foams

More information

CHARACTERIZATION OF PHYSICAL AND MECHANICAL PROPERTIES OF RIGID POLYURETHANE FOAM

CHARACTERIZATION OF PHYSICAL AND MECHANICAL PROPERTIES OF RIGID POLYURETHANE FOAM CHARACTERIZATION OF PHYSICAL AND MECHANICAL PROPERTIES OF RIGID POLYURETHANE FOAM Puput Wiyono, Faimun, Priyo Suprobo and Heppy Kristijanto Department of Civil Engineering, Institut Teknologi Sepuluh Nopember,

More information

Fatigue of High Purity Copper Wire

Fatigue of High Purity Copper Wire Fatigue of High Purity Copper Wire N. Tanabe, A. Kurosaka, K. Suzuki, O. Kohno To cite this version: N. Tanabe, A. Kurosaka, K. Suzuki, O. Kohno. Fatigue of High Purity Copper Wire. Journal de Physique

More information

A simple gas-liquid mass transfer jet system,

A simple gas-liquid mass transfer jet system, A simple gas-liquid mass transfer jet system, Roger Botton, Dominique Cosserat, Souhila Poncin, Gabriel Wild To cite this version: Roger Botton, Dominique Cosserat, Souhila Poncin, Gabriel Wild. A simple

More information

The 3 rd TSME International Conference on Mechanical Engineering October 2012, Chiang Rai

The 3 rd TSME International Conference on Mechanical Engineering October 2012, Chiang Rai P including Paper ID Crush Response of Polyurethane Foam-Filled Aluminium Tube Subjected to Axial Loading Nirut Onsalung*, Chawalit Thinvongpituk, Visit Junchuan and Kulachate Pianthong Department of Mechanical

More information

Creep Forming of an Al-Mg-Li Alloy for Aeronautic Application

Creep Forming of an Al-Mg-Li Alloy for Aeronautic Application Creep Forming of an Al-Mg-Li Alloy for Aeronautic Application Wael Younes, Eliane Giraud, Fredj Montassar, Philippe Dal Santo, Sjoerd Van Der Veen To cite this version: Wael Younes, Eliane Giraud, Fredj

More information

DEVELOPMENT AND EVALUATION OF FRACTURE MECHANICS TEST METHODS FOR SANDWICH COMPOSITES

DEVELOPMENT AND EVALUATION OF FRACTURE MECHANICS TEST METHODS FOR SANDWICH COMPOSITES DEVELOPMENT AND EVALUATION OF FRACTURE MECHANICS TEST METHODS FOR SANDWICH COMPOSITES Daniel O. Adams, Jeffery A. Kessler, Joseph Nelson, Josh Bluth, and Brad Kuramoto Department of Mechanical Engineering

More information

EXPERIMENTAL STUDY ON DOUBLE LAP JOINTS COMPOSED OF HYBRID CFRP/GFRP LAMINATE

EXPERIMENTAL STUDY ON DOUBLE LAP JOINTS COMPOSED OF HYBRID CFRP/GFRP LAMINATE EXPERIMENTAL STUDY ON DOUBLE LAP JOINTS COMPOSED OF HYBRID CFRP/GFRP LAMINATE Hiroshi MUTSUYOSHI 1) and Nguyen Duc HAI 1) 1) Structural Material Lab., Department of Civil and Environmental Engineering,

More information

The Flexural Properties of Glass Fabric/Epoxy -Rigid Polyurethane Foam Core Sandwich Composites at Different Span to Depth Ratios and Densities

The Flexural Properties of Glass Fabric/Epoxy -Rigid Polyurethane Foam Core Sandwich Composites at Different Span to Depth Ratios and Densities Proc. of the Intl. Conf. on Advances In Engineering And Technology - ICAET-214 ISBN: 978-1-63248-28-6 doi: 1.15224/ 978-1-63248-28-6-3-87 The Flexural Properties of Glass Fabric/Epoxy -Rigid Polyurethane

More information

Rate Dependency Plastic Modeling

Rate Dependency Plastic Modeling Rate Dependency Plastic Modeling Hubert Lobo expert material testing CAE material parameters CAE Validation software & infrastructure for materials materials knowledge electronic lab notebooks Considerations

More information

MECHANICAL CHARACTERIZATION OF SANDWICH STRUCTURE COMPRISED OF GLASS FIBER REINFORCED CORE: PART 1

MECHANICAL CHARACTERIZATION OF SANDWICH STRUCTURE COMPRISED OF GLASS FIBER REINFORCED CORE: PART 1 Composites in Construction 2005 Third International Conference Lyon, France, July 11 13, 2005 MECHANICAL CHARACTERIZATION OF SANDWICH STRCTRE COMPRISED OF GLASS FIBER REINFORCED CORE: PART 1 S.V. Rocca

More information

EXPERIMENTAL PROGRAM FOR IMPACT TESTS ON A HONEYCOMB CORE COMPOSITE MATERIAL

EXPERIMENTAL PROGRAM FOR IMPACT TESTS ON A HONEYCOMB CORE COMPOSITE MATERIAL THE PUBLISHING HOUSE PROCEEDINGS OF THE ROMANIAN ACADEMY, Series A, OF THE ROMANIAN ACADEMY Volume 18, Number 2/2017, pp. 150 157 EXPERIMENTAL PROGRAM FOR IMPACT TESTS ON A HONEYCOMB CORE COMPOSITE MATERIAL

More information

SEBASTIAN FISCHER Universität Stuttgart, Institut für Flugzeugbau, Stuttgart, Germany

SEBASTIAN FISCHER Universität Stuttgart, Institut für Flugzeugbau, Stuttgart, Germany SANDWICH STRUCTURES WITH FOLDED CORE: MANUFACTURING AND MECHANICAL BEHAVIOR SEBASTIAN FISCHER Universität Stuttgart, Institut für Flugzeugbau, 70569 Stuttgart, Germany SEBASTIAN HEIMBS EADS Innovation

More information

Analysis and design of composite structures

Analysis and design of composite structures Analysis and design of composite structures Class notes 1 1. Introduction 2 Definition: composite means that different materials are combined to form a third material whose properties are superior to those

More information

IMPACT BEHAVIOUR OF SPOT-WELDED THIN-WALLED FRUSTA

IMPACT BEHAVIOUR OF SPOT-WELDED THIN-WALLED FRUSTA IMPACT BEHAVIOUR OF SPOT-WELDED THIN-WALLED FRUSTA Maria KOTEŁKO *, Artur MOŁDAWA * *Faculty of Mechanical Engineering, Department of Strength of Materials, Łódź University of Technology, ul. Stefanowskiego

More information

Mechanics of Materials and Structures

Mechanics of Materials and Structures Journal of Mechanics of Materials and Structures METAL SANDWICH PLATES WITH POLYMER FOAM-FILLED CORES A. Vaziri, Z. Xue and J. W. Hutchinson Volume 1, Nº 1 January 2006 mathematical sciences publishers

More information

RESPONSE OF FLEXIBLE SANDWICH PANELS TO BLAST LOADING

RESPONSE OF FLEXIBLE SANDWICH PANELS TO BLAST LOADING 16 TH INTERNATIONAL CONFERENCE ON COMPOSITE MATERIALS RESPONSE OF FLEXIBLE SANDWICH PANELS TO BLAST LOADING D. Karagiozova**, G.N. Nurick*, G.S. Langdon*, S. Chung Kim Yuen*, Y. Chi* and S. Bartle* [G.N.

More information

Comparison of lead concentration in surface soil by induced coupled plasma/optical emission spectrometry and X-ray fluorescence

Comparison of lead concentration in surface soil by induced coupled plasma/optical emission spectrometry and X-ray fluorescence Comparison of lead concentration in surface soil by induced coupled plasma/optical emission spectrometry and X-ray fluorescence Roseline Bonnard, Olivier Bour To cite this version: Roseline Bonnard, Olivier

More information

FEM Analysis of Ogive Nose Projectile Impact on Aluminum Plates

FEM Analysis of Ogive Nose Projectile Impact on Aluminum Plates International Journal of Engineering Research and Development e-issn: 2278-067X, p-issn : 2278-800X, www.ijerd.com Volume 5, Issue 4 (December 2012), PP. 01-07 FEM Analysis of Ogive Nose Projectile Impact

More information

Facility Layout Planning of Central Kitchen in Food Service Industry: Application to the Real-Scale Problem

Facility Layout Planning of Central Kitchen in Food Service Industry: Application to the Real-Scale Problem Facility Layout Planning of Central Kitchen in Food Service Industry: Application to the Real-Scale Problem Nobutada Fujii, Toshiya Kaihara, Minami Uemura, Tomomi Nonaka, Takeshi Shimmura To cite this

More information

In-plane compression of hollow composite pyramidal lattice sandwich columns

In-plane compression of hollow composite pyramidal lattice sandwich columns In-plane compression of hollow composite pyramidal lattice sandwich columns Sha Yin 1, Linzhi Wu 1,*, Steven Nutt 2 1. Center for Composite Materials, Harbin Institute of Technology, Harbin, China 2. Department

More information

MULTI-AXIAL YIELD BEHAVIOUR OF POLYMER FOAMS

MULTI-AXIAL YIELD BEHAVIOUR OF POLYMER FOAMS Acta mater. 49 (2001) 1859 1866 www.elsevier.com/locate/actamat MULTI-AXIAL YIELD BEHAVIOUR OF POLYMER FOAMS V. S. DESHPANDE and N. A. FLECK Department of Engineering, University of Cambridge, Trumpington

More information

Damage Assessment in Aerospace Grade Carbon Fiber Composites subjected to Drop Weight Mechanical Impact

Damage Assessment in Aerospace Grade Carbon Fiber Composites subjected to Drop Weight Mechanical Impact Journal of Engineering (JOE) ISSN: 2325-0224 162 Vol. 3, No. 1, 2014, Pages: 162-167 Copyright World Science Publisher, United States www.worldsciencepublisher.org Damage Assessment in Aerospace Grade

More information

The Effect of Nitrogen on Martensite Formation in a Cr-Mn-Ni Stainless Steel

The Effect of Nitrogen on Martensite Formation in a Cr-Mn-Ni Stainless Steel The Effect of Nitrogen on Martensite Formation in a Cr-Mn-Ni Stainless Steel T. Biggs, R. Knutsen To cite this version: T. Biggs, R. Knutsen. The Effect of Nitrogen on Martensite Formation in a Cr-Mn-

More information

Crack nucleation and propagation in highly heterogeneous microstructure models based on X-ray CT images of real materials

Crack nucleation and propagation in highly heterogeneous microstructure models based on X-ray CT images of real materials Crack nucleation and propagation in highly heterogeneous microstructure models based on X-ray CT images of real materials Thanh Tung Nguyen, Julien Yvonnet, Qizhi Zhu, Michel Bornert, Camille Chateau To

More information

3. MECHANICAL PROPERTIES OF STRUCTURAL MATERIALS

3. MECHANICAL PROPERTIES OF STRUCTURAL MATERIALS 3. MECHANICAL PROPERTIES OF STRUCTURAL MATERIALS Igor Kokcharov 3.1 TENSION TEST The tension test is the most widely used mechanical test. Principal mechanical properties are obtained from the test. There

More information

Flexural Behaviour of Sandwich Composite Panels Fabricated Through Different Vacuum Bagging Techniques

Flexural Behaviour of Sandwich Composite Panels Fabricated Through Different Vacuum Bagging Techniques Journal of Materials Science & Surface Engineering Vol. 3 (4), 2015, pp 293-297 Contents lists available at http://www.jmsse.org/ Journal of Materials Science & Surface Engineering Flexural Behaviour of

More information

Stretch bend-hybrid hierarchical composite pyramidal lattice cores

Stretch bend-hybrid hierarchical composite pyramidal lattice cores Stretch bend-hybrid hierarchical composite pyramidal lattice cores Sha Yin 1,*, Linzhi Wu 1,*, Steven Nutt 2 1. Center for Composite Materials, Harbin Institute of Technology, Harbin 150001, China 2. Department

More information

THE EFFECT OF DYNAMIC LOADING ON THE STRUCTURE AND PROPERTIES OF 18G2A AND 14HNMBCu STEELS

THE EFFECT OF DYNAMIC LOADING ON THE STRUCTURE AND PROPERTIES OF 18G2A AND 14HNMBCu STEELS THE EFFECT OF DYNAMIC LOADING ON THE STRUCTURE AND PROPERTIES OF 18G2A AND 14HNMBCu STEELS J. Gronostajski, W. Palczewski To cite this version: J. Gronostajski, W. Palczewski. THE EFFECT OF DYNAMIC LOADING

More information

Mechanical Properties of Three-Dimensional Fabric Sandwich Composites

Mechanical Properties of Three-Dimensional Fabric Sandwich Composites Mechanical Properties of Three-Dimensional Fabric Sandwich Composites Mengyuan Wang, Haijian Cao, Kun Qian Key Laboratory of Eco-textiles, Ministry of Education, Jiangnan University, Wuxi, Jiangsu CHINA

More information

True Stress and True Strain

True Stress and True Strain True Stress and True Strain For engineering stress ( ) and engineering strain ( ), the original (gauge) dimensions of specimen are employed. However, length and cross-sectional area change in plastic region.

More information

DIGITAL IMAGE CORRELATION FAILURE ANALYSIS OF COMPOSITE SANDWICH MATERIAL

DIGITAL IMAGE CORRELATION FAILURE ANALYSIS OF COMPOSITE SANDWICH MATERIAL DIGITAL IMAGE CORRELATION FAILURE ANALYSIS OF COMPOSITE SANDWICH MATERIAL J. P. Dear, H. Arora, A. Puri and P. Hooper Department of Mechanical Engineering, Imperial College London, Exhibition road, London,

More information

Realising the Potential of Carbon Fibre Composites in Compression

Realising the Potential of Carbon Fibre Composites in Compression Programme Grant Jakub Rycerz, Michael Wisnom, Kevin Potter www.bris.ac.uk/composites Outline 2/12 Introduction Material Properties: Carbon Non-linearity Carbon Fibre Theoretical Limits Shear Instability

More information

Transverse and longitudinal crushing of aluminum-foam filled tubes

Transverse and longitudinal crushing of aluminum-foam filled tubes Scripta Materialia 46 (2002) 513 518 www.actamat-journals.com Transverse and longitudinal crushing of aluminum-foam filled tubes I.W. Hall a, *, M. Guden b, T.D. Claar c a Department of Mechanical Engineering,

More information

On the relation between the Luders deformation and grain boundary structure in aluminium alloy

On the relation between the Luders deformation and grain boundary structure in aluminium alloy On the relation between the Luders deformation and grain boundary structure in aluminium alloy Yu. B. Timoshenko To cite this version: Yu. B. Timoshenko. On the relation between the Luders deformation

More information

Occupational accidents in Belgian industry in restructuring contexts

Occupational accidents in Belgian industry in restructuring contexts Occupational accidents in Belgian industry in restructuring contexts Cédric Lomba To cite this version: Cédric Lomba. Occupational accidents in Belgian industry in restructuring contexts. What precariousness

More information

Prediction on the onset of global failure of irregular honeycombs under. compression

Prediction on the onset of global failure of irregular honeycombs under. compression ICCM2015, 14-17 th July, Auckland, NZ Prediction on the onset of global failure of irregular honeycombs under compression Youming Chen, Raj Das, and Mark Battley Centre for Advanced composite materials,

More information

NUTC R211 A National University Transportation Center at Missouri University of Science & Technology

NUTC R211 A National University Transportation Center at Missouri University of Science & Technology Pultruded Composites Using Soy-based Polyurethane Resine by K. Chandrashekhara NUTC R211 A National University Transportation Center at Missouri University of Science & Technology Disclaimer The contents

More information

Honeycomb sandwich material modelling for dynamic simulations of a crash-box for a racing car

Honeycomb sandwich material modelling for dynamic simulations of a crash-box for a racing car Structures Under Shock and Impact X 167 Honeycomb sandwich material modelling for dynamic simulations of a crash-box for a racing car S. Boria & G. Forasassi Department of Mechanical, Nuclear and Production

More information

Can combining web and mobile communication channels reveal concealed customer value?

Can combining web and mobile communication channels reveal concealed customer value? Can combining web and mobile communication channels reveal concealed customer value? Grégoire Bothorel, Régine Vanheems, Anne Guérin To cite this version: Grégoire Bothorel, Régine Vanheems, Anne Guérin.

More information

Citation for published version (APA): Amsterdam, E. (2008). Structural performance and failure analysis of aluminium foams s.n.

Citation for published version (APA): Amsterdam, E. (2008). Structural performance and failure analysis of aluminium foams s.n. University of Groningen Structural performance and failure analysis of aluminium foams Amsterdam, Emiel IMPORTANT NOTE: You are advised to consult the publisher's version (publisher's PDF) if you wish

More information

FE MODELING OF CFRP STRENGTHENED CONCRETE BEAM EXPOSED TO CYCLIC TEMPERATURE, HUMIDITY AND SUSTAINED LOADING

FE MODELING OF CFRP STRENGTHENED CONCRETE BEAM EXPOSED TO CYCLIC TEMPERATURE, HUMIDITY AND SUSTAINED LOADING FE MODELING OF STRENGTHENED CONCRETE BEAM EXPOSED TO CYCLIC TEMPERATURE, HUMIDITY AND SUSTAINED LOADING H. R. C. S. Bandara (Email: chinthanasandun@yahoo.com) J. C. P. H. Gamage (Email: kgamage@uom.lk)

More information

Lecture 15, Energy Absorption Notes, 3.054

Lecture 15, Energy Absorption Notes, 3.054 Lecture 15, Energy Absorption Notes, 3.054 Energy absorption in foams Impact protection must absorb the kinetic energy of the impact while keeping the peak stress below the threshold that causes injury

More information

An Investigation on Crashworthiness Design of Aluminium Columns with Damage Criteria

An Investigation on Crashworthiness Design of Aluminium Columns with Damage Criteria Research Journal of Recent Sciences ISSN 2277-252 Vol. 1(7), 19-24, July (212) Res.J.Recent Sci. An Investigation on Crashworthiness Design of Aluminium Columns with Damage Criteria Abstract Dadrasi Ali

More information

Flexural Behavior of Sandwich Composite Panels Under 4-Point Loading

Flexural Behavior of Sandwich Composite Panels Under 4-Point Loading International Journal of Materials Science ISSN 0973-4589 Volume 11, Number 1 (2016), pp. 47-55 Research India Publications http://www.ripublication.com Flexural Behavior of Sandwich Composite Panels Under

More information

EFFECT OF LOCAL WALL THINNING ON FRACTURE BEHAVIOR OF STRAIGHT PIPE

EFFECT OF LOCAL WALL THINNING ON FRACTURE BEHAVIOR OF STRAIGHT PIPE ECF EFFECT OF LOCAL WALL THINNING ON FRACTURE BEHAVIOR OF STRAIGHT PIPE Masato Ono, Ki-Woo Nam*, Koji Takahashi, Kotoji Ando Department of Safety & Energy Engineering, Yokohama National University 79-

More information

Design of single piece sabot for a single stage gas gun

Design of single piece sabot for a single stage gas gun IOP Conference Series: Materials Science and Engineering PAPER OPEN ACCESS Design of single piece sabot for a single stage gas gun To cite this article: Vignesh Vemparala et al 2017 IOP Conf. Ser.: Mater.

More information

Bending Response and Energy Absorption of Closed-Hat-Section Beams

Bending Response and Energy Absorption of Closed-Hat-Section Beams Modern Applied Science; Vol. 10, No. 11; 2016 ISSN 1913-1844 E-ISSN 1913-1852 Published by Canadian Center of Science and Education Bending Response and Energy Absorption of Closed-Hat-Section Beams Hafizan

More information

Value-Based Design for Gamifying Daily Activities

Value-Based Design for Gamifying Daily Activities Value-Based Design for Gamifying Daily Activities Mizuki Sakamoto, Tatsuo Nakajima, Todorka Alexandrova To cite this version: Mizuki Sakamoto, Tatsuo Nakajima, Todorka Alexandrova. Value-Based Design for

More information

EFFECT OF LOW VELOCITY IMPACT ON DEFORMATION BEHAVIOUR OF METALLIC PRESSURE VESSEL

EFFECT OF LOW VELOCITY IMPACT ON DEFORMATION BEHAVIOUR OF METALLIC PRESSURE VESSEL EFFECT OF LOW VELOCITY IMPACT ON DEFORMATION BEHAVIOUR OF METALLIC PRESSURE VESSEL N. H. Farhood, S. Karuppanan, H. H. Ya and A. N. Mengal Department of Mechanical Engineering, Universiti Teknologi Petronas,

More information

BEHAVIOR OF INFILL MASONRY WALLS STRENGTHENED WITH FRP MATERIALS

BEHAVIOR OF INFILL MASONRY WALLS STRENGTHENED WITH FRP MATERIALS BEHAVIOR OF INFILL MASONRY WALLS STRENGTHENED WITH FRP MATERIALS D.S. Lunn 1,2, V. Hariharan 1, G. Lucier 1, S.H. Rizkalla 1, and Z. Smith 3 1 North Carolina State University, Constructed Facilities Laboratory,

More information

SEM Based Studies on Damage Analysis of GFRP and CFRP Sandwich Composites

SEM Based Studies on Damage Analysis of GFRP and CFRP Sandwich Composites American Journal of Materials Science 2015, 5(3C): 146-150 DOI: 10.5923/c.materials.201502.29 SEM Based Studies on Damage Analysis of GFRP and CFRP Sandwich Composites Sunith Babu L. 1,*, H. K. Shivanand

More information

INTERNATIONAL JOURNAL OF CIVIL AND STRUCTURAL ENGINEERING Volume 2, No 2, 2011

INTERNATIONAL JOURNAL OF CIVIL AND STRUCTURAL ENGINEERING Volume 2, No 2, 2011 INTERNATIONAL JOURNAL OF CIVIL AND STRUCTURAL ENGINEERING Volume 2, No 2, 2011 Copyright 2010 All rights reserved Integrated Publishing services Research article ISSN 0976 4399 Nonlinear Seismic Behavior

More information

Investigation of the behavior of stiffened steel plate shear walls with Finite element method

Investigation of the behavior of stiffened steel plate shear walls with Finite element method Technical Journal of Engineering and Applied Sciences Available online at www.tjeas.com 2014 TJEAS Journal-2014-4-2/67-73 ISSN 2051-0853 2014 TJEAS Investigation of the behavior of stiffened steel plate

More information

Arch. Metall. Mater. 62 (2017), 2B,

Arch. Metall. Mater. 62 (2017), 2B, Arch. Metall. Mater. 6 (7), B, 9- DOI:.55/amm-7- B.-H. KANG*, M.-H. PARK**, K.-A. LEE*** # EFFECT OF STRUT THICKNESS ON ROOM AND HIGH TEMPERATURE COMPRESSIVE PROPEIES OF BLOCK-TYPE Ni-Cr-Al POWDER POROUS

More information

Available online at ScienceDirect. Procedia Engineering 144 (2016 )

Available online at  ScienceDirect. Procedia Engineering 144 (2016 ) Available online at www.sciencedirect.com ScienceDirect Procedia Engineering 144 (2016 ) 124 131 12th International Conference on Vibration Problems, ICOVP 2015 Experimental study of plain and reinforced

More information

NANOSANDWICH STRUCTURES UNDER IMPACT LOADINGS

NANOSANDWICH STRUCTURES UNDER IMPACT LOADINGS NANOSANDWICH STRUCTURES UNDER IMPACT LOADINGS A.F. Ávila, M. C. Andrade, E.C. Dias, D. T. L Cruz Universidade Federal de Minas Gerais, Department of Mechanical Engineering 6627 Antonio Carlos Avenue, Belo

More information

IMPACT PROPERTIES OF CFRP/AL HYBRID BEAM FOR ABSORBING IMPACT ENERGY IN SIDE COLLISION OF AUTOMOBILES

IMPACT PROPERTIES OF CFRP/AL HYBRID BEAM FOR ABSORBING IMPACT ENERGY IN SIDE COLLISION OF AUTOMOBILES 16 TH INTERNATIONAL CONFERENCE ON COMPOSITE MATERIALS IMPACT PROPERTIES OF CFRP/AL HYBRID BEAM FOR ABSORBING IMPACT ENERGY IN SIDE COLLISION OF AUTOMOBILES Goichi Ben*, Yoshio Aoki**, Nao Sugimoto* *Nihon

More information

Impact Tester. Ball Drop Easy operating falling dart instrument according ASTM D 1709 and ISO Instruments for mechanical testing.

Impact Tester. Ball Drop Easy operating falling dart instrument according ASTM D 1709 and ISO Instruments for mechanical testing. Ball Drop Easy operating falling dart instrument according ASTM D 1709 and ISO 7765-1 This testing instrument covers the determination of the energy that causes plastic film to fail under specified conditions

More information

Ductility of Ultra High Purity Copper

Ductility of Ultra High Purity Copper Ductility of Ultra High Purity Copper S. Fujiwara, K. Abiko To cite this version: S. Fujiwara, K. Abiko. Ductility of Ultra High Purity Copper. Journal de Physique IV Colloque, 1995, 05 (C7), pp.c7-295-c7-300.

More information

Effects of fibre content on mechanical properties and fracture behaviour of short carbon fibre reinforced geopolymer matrix composites

Effects of fibre content on mechanical properties and fracture behaviour of short carbon fibre reinforced geopolymer matrix composites Bull. Mater. Sci., Vol. 32, No. 1, February 2009, pp. 77 81. Indian Academy of Sciences. Effects of fibre content on mechanical properties and fracture behaviour of short carbon fibre reinforced geopolymer

More information

Production technology for aluminium foam/steel sandwiches

Production technology for aluminium foam/steel sandwiches 113 Production technology for aluminium foam/steel sandwiches Abstract J. Baumeister, raunhofer-institute for Manufacturing and Applied Materials Research, Bremen 3-dimensional shaped sandwich panels with

More information

Dynamic compressive behavior of recycled aggregate concrete based on split Hopkinson pressure bar tests

Dynamic compressive behavior of recycled aggregate concrete based on split Hopkinson pressure bar tests 11(2014) 131-141 Dynamic compressive behavior of recycled aggregate concrete based on split Hopkinson pressure bar tests Abstract This paper presents the experimental results of recycled aggregate concrete

More information

The mechanical response of a PBX and binder: combining results across the strain-rate and frequency domains

The mechanical response of a PBX and binder: combining results across the strain-rate and frequency domains The mechanical response of a PBX and binder: combining results across the strain-rate and frequency domains D R Drodge, D M Williamson, S J P Palmer, W G Proud, R K Govier To cite this version: D R Drodge,

More information

CHAPTER 3 OUTLINE PROPERTIES OF MATERIALS PART 1

CHAPTER 3 OUTLINE PROPERTIES OF MATERIALS PART 1 CHAPTER 3 PROPERTIES OF MATERIALS PART 1 30 July 2007 1 OUTLINE 3.1 Mechanical Properties 3.1.1 Definition 3.1.2 Factors Affecting Mechanical Properties 3.1.3 Kinds of Mechanical Properties 3.1.4 Stress

More information

Modal Analysis of Composite Sandwich Panel

Modal Analysis of Composite Sandwich Panel International Journal of Current Engineering and Technology E-ISSN 2277 4106, P-ISSN 2347 5161 2016 INPRESSCO, All Rights Reserved Available at http://inpressco.com/category/ijcet Research Article G.D.Shrigandhi

More information

DEVELOPMENT OF STANDARD TEST METHODS FOR SANDWICH COMPOSITES UNDER ASTM COMMITTEE D30

DEVELOPMENT OF STANDARD TEST METHODS FOR SANDWICH COMPOSITES UNDER ASTM COMMITTEE D30 DEVELOPMENT OF STANDARD TEST METHODS FOR SANDWICH COMPOSITES UNDER ASTM COMMITTEE D30 A. J. Sawicki The Boeing Company Route 291 & Stewart Ave., MC P24-25, Ridley PA 19078, USA adam.j.sawicki@boeing.com

More information

FEA and Experimental Studies of Adaptive Composite Materials with SMA Wires

FEA and Experimental Studies of Adaptive Composite Materials with SMA Wires FEA and Experimental Studies of Adaptive Composite Materials with SMA Wires K.Kanas, C.Lekakou and N.Vrellos Abstract This study comprises finite element simulations and experimental studies of the shape

More information

Influence of fibre volume fraction on mode II interlaminar fracture toughness of glass/epoxy using the 4ENF specimen

Influence of fibre volume fraction on mode II interlaminar fracture toughness of glass/epoxy using the 4ENF specimen Influence of fibre volume fraction on mode II interlaminar fracture toughness of glass/epoxy using the ENF specimen Peter Davies, Pascal Casari, L. A. Carlsson To cite this version: Peter Davies, Pascal

More information

Aeration control in a full-scale activated sludge wastewater treatment plant: impact on performances, energy consumption and N2O emission

Aeration control in a full-scale activated sludge wastewater treatment plant: impact on performances, energy consumption and N2O emission Aeration control in a full-scale activated sludge wastewater treatment plant: impact on performances, energy consumption and N2O emission A. Filali, Y. Fayolle, P. Peu, L. Philippe, F. Nauleau, S. Gillot

More information

EXPERIMENTAL STUDY OF FOAM FILLED ALUMINUM COLUMNS UNDER AXIAL IMPACT LOADING

EXPERIMENTAL STUDY OF FOAM FILLED ALUMINUM COLUMNS UNDER AXIAL IMPACT LOADING Journal of KONES Powertrain and Transport, Vol. 20, No. 2 2013 EXPERIMENTAL STUDY OF FOAM FILLED ALUMINUM COLUMNS UNDER AXIAL IMPACT LOADING Leonardo Gunawan, Annisa Jusuf, Tatacipta Dirgantara, Ichsan

More information

L Shaped End Anchors to Eliminate Premature Plate End Debonding in Strengthened RC Beams

L Shaped End Anchors to Eliminate Premature Plate End Debonding in Strengthened RC Beams L Shaped End Anchors to Eliminate Premature Plate End Debonding in Strengthened RC Beams M. Obaydullah *, Mohd Zamin Jumaat, Md. Ashraful Alam, Kh. Mahfuz Ud Darain, and Md. Akter Hosen Department of Civil

More information

ME -215 ENGINEERING MATERIALS AND PROCESES

ME -215 ENGINEERING MATERIALS AND PROCESES ME -215 ENGINEERING MATERIALS AND PROCESES Instructor: Office: MEC325, Tel.: 973-642-7455 E-mail: samardzi@njit.edu PROPERTIES OF MATERIALS Chapter 3 Materials Properties STRUCTURE PERFORMANCE PROCESSING

More information

Conception of a new engineering curriculum in smart buildings

Conception of a new engineering curriculum in smart buildings Conception of a new engineering curriculum in smart buildings Anne-Marie Jolly, Christophe Léger, Guy Lamarque To cite this version: Anne-Marie Jolly, Christophe Léger, Guy Lamarque. Conception of a new

More information